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Updated: Feb 1, 2026

Synthesis and Characterization of Functionalized Metal-organic Frameworks
Published on: September 5, 2014
Dynamic Proton Extraction from Supramolecular Functionalized Metal-Organic Framework/Ti3C2 MXene Hybrids for
Ying Tang1, Juan Jia1, Hui Zeng2
1School of Chemical Engineering and Technology, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong Engineering Technology Research Center for Platform Chemicals from Marine Biomass and their Functionalization, Sun Yat-Sen University, Zhuhai 519082, China.
Abstract:
In N2 photoreduction, photogenerated holes and electrons are involved in H2O photolysis for proton supply and the weakening of the N≡N triple bond for N2 activation, respectively. Rationally regulating the structure-activity relationship of these catalytic sites for available generation of charge carriers is crucial for optimizing N2-to-NH3 conversion efficiency. Herein, a robust photothermal catalyst carboxyl-enriched supramolecular (perylene tetracarboxylic acid, PTA) functionalized MIL-125(Ti)/MXene having dynamic proton extraction sites is designed for efficient N2 photoreduction. Among these, MIL-125(Ti), PTA, and Ti3C2 MXene are, respectively, responsible for N2 activation, reliable proton supply through interconversion between Brønsted acid and its conjugated base, and a photothermal response for accelerated reaction kinetics. The synergistic collaboration of these functionally distinct modules enhances light harvesting and responsiveness for dynamic multielectron/proton extraction, thereby facilitating feasible photothermal catalytic ammonia production. Remarkably high solar-to-ammonia conversion rates of 314.5-654.7 μmol g-1 h-1 are achieved under 100-500 mW cm-2 illumination. This work provides insights into the rational design of an efficient solar ammonia synthesis system.
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